BACKGROUND
(a) Technical Field
[0001] The present invention relates to a display device.
(b) Discussion of the Related Art
[0002] Currently known display devices include a liquid crystal display (LCD), a plasma
display panel (PDP), an organic light emitting diode (OLED) device, a field effect
display (FED), and an electrophoretic display device.
[0003] In particular, the OLED device of the above known display devices includes two electrodes
and an organic emission layer positioned between the two electrodes; an electron injected
from one electrode and a hole injected from the other electrode are coupled with each
other in the organic emission layer to generate an exciton; and the exciton emits
energy to emit light.
[0004] Since the OLED device has a self-luminance characteristic and does not require a
separate light source, unlike an LCD, its thickness and weight may be reduced. Further,
since the OLED device has superior characteristics, such as low power consumption,
high luminance, and a high response speed, the OLED device has gained attention as
a next-generation display device.
[0005] To drive an organic light emitting element of the organic light emitting device,
a fan out unit for connecting a gate line (or a data line) and a gate IC (or a data
IC) is formed in a peripheral area of a substrate. However, connection wires formed
on the fan out unit may have different lengths so as to have different resistances,
thereby delaying signals transmitted through the connection wires.
SUMMARY
[0006] The present invention has been made to provide a display device for minimizing differences
in the length of connection wires of a fan out unit.
[0007] According to an embodiment of the present invention, there is provided a display
device including: a substrate including a display area for displaying an image and
a peripheral area neighboring the display area; a plurality of signal lines formed
in the display area; a pad formed in the peripheral area; and a plurality of connection
wires for connecting the signal lines and the pad, wherein a first connection wire
and a second connection wire neighboring the first connection wire from among the
plurality of connection wires are disposed on different layers, and the first connection
wire and the second connection wire are disposed in the peripheral area in a shape
so that they extend to the display area from the pad and bend at least twice to have
at least one being bent toward backward direction.
[0008] The first and second connection wires may be disposed separately from each other
with a predetermined gap.
[0009] The first connection wire and the second connection wire each may include: a first
connector connected to the pad and a second connector connected to the signal line;
and an extension connected between the first and second connectors, the extension
including a plurality of first bridges disposed parallel to the first connector and
a plurality of second bridges forming a predetermined angle with the first bridges,
and the first bridges and the second bridges being alternately connected.
[0010] The adjacent first and second bridges may be vertical to each other.
[0011] The first bridges may be disposed parallel to each other.
[0012] The neighboring first bridges from among the first bridges may be formed to have
the same length.
[0013] The second bridges may be disposed parallel to each other.
[0014] The second bridges may be formed to have different lengths.
[0015] The second bridges may be formed to have the same length.
[0016] The first bridges may be longer than the second bridges.
[0017] The second connector may be bent.
[0018] Extension of the first connection wire and extension of the second connection wire
neighboring the first connection wire may be rotated by 180 degrees and may be symmetrical
with each other.
[0019] Neighboring edges of the first and second connection wires may overlap each other.
[0020] The pad may include a plurality of connecting pad terminals connected to the connection
wires and a plurality of dummy pad terminals not connected to the connection wires.
[0021] The first and second connection wires may be connected to the connecting pad terminal.
[0022] The display device may further include a flexible film that is connected to the pad
and that includes a first side on which a first driving chip is provided.
[0023] The display device may further include a second driving chip formed in the peripheral
area and connected to the pad.
[0024] An insulating layer may be provided between the first and second connection wires.
[0025] Signal lines connected to the first and second connection wires from among the signal
lines may be formed on different layers.
[0026] The connection wires may be formed to be double layers, triple layers, or quadruple
layers.
[0027] The signal lines may be gate lines.
[0028] The signal lines may be data lines.
[0029] In an embodiment of the present invention, there is provided a display device including:
a substrate having a display panel and a pad; a plurality of signal lines formed in
the display panel; a plurality of connecting pad terminals formed in the pad; and
a plurality of connection wires formed on the substrate for connecting the signal
lines and the connecting pad terminals, wherein a first connection wire and a second
connection wire neighboring the first connection wire from among the plurality of
connection wires are disposed and separated from each other with a predetermined gap
on different layers, and the first connection wire and the second connection wire
having a same length, which are shaped to extend to the display panel from the pad
and are bent at least twice to have at least one being bent toward backward direction.
[0030] At least some of the above and other features of the invention are set out in the
claims.
[0031] In the display device according to an embodiment of the present invention, the transmission
of signals is prevented from being delayed by allowing the connection wires of the
fan out unit to have the same length.
[0032] Further, adjacent connection wires are disposed on different layers to minimize the
gap among the connection wires and thereby increase the integrity of the connection
wires.
[0033] In addition, adjacent connection wires are disposed on different layers to prevent
the connection wires from being short-circuited by a foreign particle.
BRIEF DESCRIPTION OF THE DRAWINGS
[0034] The invention may best be understood from the following detailed description of embodiments
thereof, taken in conjunction with the appended drawings, and in which:
FIG. 1 shows a partial top plan view of a display device including connection wires
according to a first embodiment of the inventive concept;
FIG. 2 shows a display area of FIG. 1 according to an embodiment of the inventive
concept;
FIG. 3 shows a cross-sectional view with respect to line III-III of FIG. 2 according
to an embodiment of the inventive concept;
FIG. 4 shows an enlarged view of connection wires in region A of FIG. 1 according
to a first embodiment of the inventive concept;
FIG. 5 shows first and second connection wires of FIG. 4 according to an embodiment
of the inventive concept;
FIG. 6 shows a cross-sectional view with respect to line VI-VI of FIG. 4 according
to an embodiment of the inventive concept;
FIG. 7 shows an exemplary variation of connection wires according to a first embodiment
of the inventive concept;
FIG. 8 shows a cross-sectional view with respect to line VIII-VIII of FIG. 7 according
to an embodiment of the inventive concept;
FIG. 9 shows an exemplary variation of a driving chip of FIG. 1 according to an embodiment
of the inventive concept;
FIG. 10 shows an enlarged view of connection wires according to a second embodiment
of the inventive concept;
FIG. 11 shows first and second connection wires of FIG. 10 according to an embodiment
of the inventive concept;
FIG. 12 shows a cross-sectional view with respect to line XII-XII of FIG. 10 according
to an embodiment of the inventive concept; and
FIG. 13 shows a comparison of connection wires configured with a single layer and
double layers according to an embodiment of the inventive concept.
[0035] Since the drawings in FIGS. 1-13 are intended for illustrative purpose, the elements
in the drawings are not necessarily drawn to scale. For example, some of the elements
may be enlarged or exaggerated for clarity purpose.
DETAILED DESCRIPTION
[0036] In the following detailed description, only certain embodiments of the inventive
concept have been shown and described, simply by way of illustration. As those skilled
in the art would realize, the described embodiments may be modified in various different
ways, all without departing from the scope of the invention. The drawings and description
are to be regarded as illustrative in nature and not restrictive. Like reference numerals
designate like elements throughout the specification.
[0037] The size and thickness of each component illustrated in the drawings are arbitrarily
illustrated in the drawings for better understanding and ease of description, but
the present invention is not limited to the illustrations.
[0038] It will be understood that when an element, for example, a layer, film, region, or
substrate is referred to as being "on" another element, it can be directly on the
other element or intervening elements may also be present. In addition, throughout
the specification, unless explicitly described to the contrary, the word "comprise"
and variations, for example, "comprises" or "comprising" will be understood to imply
the inclusion of stated elements but not the exclusion of any other elements. It is
understood that the term "on" and similar terms are used generally and are not necessarily
related to a gravitational reference.
[0039] A display device including connection wires according to a first embodiment of the
inventive concept will now be described with reference to FIG. 1 to FIG. 6.
[0040] FIG. 1 shows a partial top plan view of a display device including connection wires
according to a first embodiment of the inventive concept, FIG. 2 shows a display area
of FIG. 1, and FIG. 3 shows a cross-sectional view with respect to line III-III of
FIG. 2.
[0041] Referring to FIG. 1 to FIG. 3, the display device includes a substrate (SUB), a display
panel 100, a pad (P), a flexible film 400, and a plurality of connection wires 300.
[0042] From among a plurality of connection wires 300 for connecting the display panel 100
and the pad (P), first and second connection wires 311 and 312 that are adjacent to
each other are formed on different layers, are separated from each other with a predetermined
gap, and are disposed parallel to each other. FIG. 4 shows an enlarged view of connection
wires in region A of FIG. 1. As shown in FIG. 4, the first and second connection wires
311 and 312 include a section extended to the display panel 100 from the pad (P) in
a second direction, in which these connection wires are extended to the display panel
100 in a forward direction, bent to extend toward the pad (P) in a backward direction,
and then bent to extend to the display panel 100. An X axis represents the first direction
and a Y axis indicates the second direction. The first and second connection wires
311 and 312 are bent at least twice, and these wires are bent toward backward direction
at least once.
[0043] Referring to FIG. 1, the substrate (SUB) is divided into a display area (DA) for
displaying an image and a peripheral area (PA) neighboring the display area (DA).
A display panel 100 for emitting light may be provided in the display area (DA). A
plurality of connection wires 300, a pad (P), and a flexible film 400 for driving
the display panel 100 may be provided in the peripheral area (PA). The above-described
components provided on the substrate (SUB) will be described further.
[0044] Referring to FIG. 2 and FIG. 3, the display panel 100 formed in the display area
(DA) of the substrate (SUB), includes first gate wires (GW1), second gate wires (GW2),
data wires (DW), a display unit 140, and a pixel 150.
[0045] In response to a control signal supplied by an external control circuit (e.g., a
timing controller), the gate driver 210 sequentially supplies scan signals to first
scan lines (SC2-SC2n) or second scan lines (SC1-SC2n-1) included in the first gate
wires GW1 or the second gate wires GW2. The pixel 150 is selected by the scan signal
and sequentially receives a data signal. The gate driver 210 shown in FIG. 2 is formed
in a first driving chip 200 on a flexible film 400, and it is shown in FIG. 2 for
convenience of description.
[0046] The first gate wires GW1 as shown in FIG. 3 are provided on the substrate (SUB) with
a first insulating layer GI1 therebetween, and are extended in a first direction.
The first gate wires GW1 include a second scan line (SC2n-1) and emission control
line (E1-En). The second scan line (SC2n-1) is connected to a gate driver 210 and
receives a scan signal from the gate driver 210. An emission control line (En) is
connected to an emission control driver 220 and receives an emission control signal
from the emission control driver 220. In a like manner as the gate driver 210, the
emission control driver 220 shown in FIG. 2 is formed in the first driving chip 200
on the flexible film 400 and is shown in FIG. 2 for ease of description.
[0047] The second gate wires GW2 are provided on the first gate wires GW1 with a second
insulating layer GI2 therebetween, and are extended in the first direction. The second
gate wires GW2 include a first scan line (SC2n) and an initialization power line (Vinit).
The first gate wires GW1 do not overlap the second gate wires GW2.
[0048] The first scan line (SC2n) is connected to the gate driver 210 and receives a scan
signal from the gate driver 210. The initialization power line (Vinit) is connected
to the gate driver 210 and receives initialization power from the gate driver 210.
[0049] In an embodiment of the inventive concept, the initialization power line (Vinit)
receives the initialization power from the gate driver 210, and it may be connected
to another additional component and may receive initialization power from the additional
component.
[0050] The emission control driver 220 sequentially supplies an emission control signal
to the emission control line (En) corresponding to a control signal supplied by an
external component such as a timing controller. The pixel 150 undergoes emission control
by the emission control signal. That is, the emission control signal controls an emission
time of the pixel 150. The emission control driver 220 may be omitted depending on
a configuration of the pixel 150.
[0051] The data driver 230 supplies a data signal to a data line (DAm) from among the data
wires (DW) corresponding to a control signal supplied by an external component such
as a timing controller. The data signal provided to the data line (DAm) is supplied
to the pixel 150 selected by a scan signal each time when the scan signal is supplied
to the first scan line (SC2n) or the second scan line (SC2n-1). The pixel 150 charges
a voltage corresponding to the data signal and emits light with a corresponding luminance.
In a like manner as the gate driver 210, the data driver 230 shown in FIG. 2 is formed
in the first driving chip 200 on the flexible film 400, and is shown in FIG. 2 for
convenience of description.
[0052] The data wires (DW) are provided on the second gate wires GW2 with a third insulating
layer (ILD) therebetween, and are extended in the second direction crossing the first
direction. The data wires (DW) include data lines (DA1-DAm) and a driving power line
(ELVDDL). The data line (DAm) is connected to the data driver 230 and receives a data
signal from the data driver 230. The driving power line (ELVDDL) is connected to a
first power source (ELVDD) and receives driving power from the first power source
(ELVDD).
[0053] The driving power line (ELVDDL) and the data line (DAm) may be formed on the same
layer on the third insulating layer (ILD). The driving power line (ELVDDL) and the
data line (DAm) may also be formed on different layers. For example, the driving power
line (ELVDDL) may be formed on the same layer as the first gate wire GW1, and the
data line (DAm) may be formed on the same layer as the second gate wire GW2. On the
contrary, the driving power line (ELVDDL) may be formed on the same layer as the second
gate wire GW2, the data line (DAm) may be formed on the same layer as the first gate
wire GW1, and the display unit 140 includes a plurality of pixels 150 provided in
crossing regions of the first gate wires GW1, the second gate wires GW2, and the data
wires (DW). The pixel 150 includes an organic light emitting element for emitting
light with luminance corresponding to a driving current that corresponds to the data
signal, and a pixel circuit for controlling the driving current flowing to the organic
light emitting element. The pixel circuit is connected to the first gate wires GW1,
the second gate wires GW2, and the data wires (DW), and the organic light emitting
element is connected to the pixel circuit. The pixel 150 is not limited to contain
the organic light emitting element, for example, it may contain a liquid crystal display
element or an electrophoretic display element.
[0054] The organic light emitting element of the display unit 140 is connected to an external
first power source (ELVDD) with a pixel circuit therebetween, and a second power source
(ELVSS). The first power source (ELVDD) and the second power source (ELVSS) supply
driving power and common power respectively to the pixel 150 of the display unit 140,
and the pixel 150 responds to the data signal according to the driving power and the
common power provided to the pixel 150 by emitting light with luminance corresponding
to the driving current passing through the organic light emitting element from the
first power source (ELVDD).
[0055] According to an embodiment of the inventive concept, the gate wires that traverse
the pixel 150 in the first direction and do not overlap each other, that is, the first
gate wires GW1 including a second scan line (SC2n-1) and an emission control line
(En) and the second gate wires GW2 including a first scan line (SC2n) and an initialization
power line (Vinit) are not provided on the same layer, but the gate wires that are
the first gate wires GW1 and the second gate wires GW2 are provided on different layers
with a second insulating layer GI2 therebetween so that the distance (W) between the
neighboring gate wires provided on the different layers may be formed to be narrow
and more pixels 150 may be formed in the same area. Thus, a high-resolution display
device may be formed.
[0056] Referring to FIG. 1 and FIG. 2, a plurality of connection wires 300 connect a plurality
of signal lines, including a data line (DAm) and a scan line (SCn) of the display
panel 100 to the pad (P). Here, the connection wires 300 correspond to the fan out
unit in the display device for connecting the gate line or the data line to the gate
IC or the data IC.
[0057] According to the first embodiment of the inventive concept, part of a plurality of
connection wires 300 includes a section extended to the display panel 100 from the
pad (P) in the second direction, in which these connection wires are extended to the
display panel 100 in a forward direction, bent and extended toward the pad (P) in
a backward direction, and then bent and extended to the display panel 100, so as to
increase resistance of the connection wires. The plurality of connection wires 300
are bent at least twice, and these wires are bent toward backward direction at least
once. For example, the connection wires may include a section formed by rotating the
letter S by 90 degrees.
[0058] As shown in FIG. 1, a plurality of connection wires 300 connected to the display
panel 100 are divided and connected to the connecting pad terminals P1 and P3 of two
regions. That is, some of the connection wires are connected to the connecting pad
terminal P1 and the rest of the connection wires are connected to the connecting pad
terminal P3. A dummy pad terminal P2 may be provided between the connecting pad terminals
P1 and P3. That is, no connection wire is connected to the dummy pad terminal P2.
[0059] A region through which a portable terminal, for example a camera module for a smartphone
or a tablet PC passes, may be provided in a region through which the connection wire
300 passes. That is, the camera module may pass through a hole (H) of FIG. 1. As such,
the connection wire is not connected to the dummy pad terminal P2. Accordingly, the
hole is provided between the connection wires 311 and 313, which neighbor each other,
and lengths of the connection wires 311 and 313 become different. When the signal
is transmitted through the connection wires 311 and 313, resistance values are different
from each other, thus signals may not simultaneously reach the display panel 100.
[0060] In the first embodiment of the inventive concept, to solve the above problem, for
the purpose of increasing resistance of the short connection wire, part of a plurality
of connection wires 300 includes a section extended to the display panel 100 from
the pad (P) in the second direction, in which the connection wires 300 are extended
to the display panel 100 in a forward direction, bent and extended toward the pad
(P) in a backward direction, and then bent and extended to the display panel 100.
The connection wires 300 are bent at least twice, and these wires are bent toward
backward direction at least once.
[0061] In detail, the neighboring first and second connection wires 311 and 312 from among
a plurality of connection wires 300 respectively include first connectors 311 a and
312a, second connectors 311b and 312b, and extensions 311c and 312c. Referring to
FIG. 5, the first connection wire 311 includes a first connector 311a, a second connector
311 b, and an extension 311 c.
[0062] The first connector 311 a is connected to a pad (P). The first connector 311 a is
extended and formed in the second direction. That is, the first connector 311a is
formed to extend to the display panel 100 from the pad (P). As shown in FIG. 1 and
FIG. 5, the first connector 311a may be formed in a linear manner in the second direction.
[0063] The second connector 311b is connected to the display panel 100 and is connected
to the first connector 311a through the extension 311c. The second connector 311 b
is formed to be bent and then connected to a signal line of the display panel 100.
[0064] The extension 311c is connected between the first and second connectors 311 a and
311 b to increase resistance of the first connection wire 311. The extension 311 c
increases the length of the connection wire to increase resistance of the wire. Here,
the extension 311 c corresponds to the section formed by rotating the letter S by
90 degrees.
[0065] In detail, the extension 311c includes a plurality of first bridges (311c-1, 311c-3,
311c-5) and a plurality of second bridges (311c-2, 311c-4). The first bridges (311c-1,
311c-3, and 311c-5) are disposed parallel to the first connector 311a, and the second
bridges (311c-2 and 311c-4) are disposed to be vertical to the first bridges (311c-1,
311c-3, and 311c-5). The plurality of second bridges may form a predetermined angle
with the first bridges, in which the predetermined angle is 90 degrees or not 90 degrees.
For example, one first bridge may form an angle smaller than 90 degrees with one second
bridge, then this second bridge may form an angle larger than 90 degrees with the
next first bridge.
[0066] The first bridges (311c-1, 311c-3, and 311c-5) and the second bridges (311c-2, 311c-4)
are alternately connected to each other. When the first bridges (311c-1, 311c-3, and
311c-5) and the second bridges (311c-2 and 311c-4) are alternately connected, as shown
in FIG. 5, the extension 311c may be disposed in a like manner as the letter S is
rotated by 90 degrees. That is, the first bridge (311c-1), the second bridge (311c-2),
the first bridge (311c-3), the second bridge (311c-4), and the first bridge (311c-5)
are sequentially disposed so that they may be disposed according to the above-noted
shape.
[0067] The first bridge (311c-1) is connected to the first connector 311a, and is disposed
along the same direction as the first connector 311a. As such, the first connection
wire 311 is extended to the display panel 100 from the pad (P) and a section going
backward is formed in the extension 311c. Here, the backward section represents a
section extended to the display panel 100 from the pad (P) in the second direction
on the first connection wire 311, in which the connection wire 311 is extended to
the display panel 100 in a forward direction, bent and extended toward the pad (P)
in a backward direction in the backward section, and then bent and extended to the
display panel 100. The connection wire 311 is bent at least twice, and the wire is
bent toward backward direction at least once.
[0068] The first bridges (311c-1, 311c-3, and 311c-5) are disposed parallel to each other.
That is, the first bridges (311c-1, 311c-3, and 311c-5) are disposed parallel to the
first connector 311a. The neighboring first bridges (311c-3 and 311 c- 5) may be formed
to have the same length.
[0069] The second bridges (311c-2 and 311c-4) are disposed parallel to each other. That
is, the second bridges (311c-2 and 311c-4) are disposed parallel to be vertical to
the first connector 311a. The second bridges (311c-2 and 311c-4) may be formed to
have different lengths.
[0070] The second connection wire 312 includes a first connector 312a, a second connector
312b, and an extension 312c.
[0071] The first connector 312a is connected to the pad (P) in a like manner as the first
connector 311a of the first connection wire 311. In this case, the first connector
312a is extended in the second direction. That is, the first connector 312a is extended
to the display panel 100 from the pad (P). The first connector 312a may be formed
in a linear manner in the second direction.
[0072] The second connector 312b is connected to the display panel 100 and is connected
to the first connector 312a through the extension 312c. The second connector 312b
may be bent and be connected to the signal line of the display panel 100.
[0073] The extension 312c is connected between the first and second connectors 312a and
312b and may increase resistance of the second connection wire 312. The extension
312c increases the length of the connection wire to increase resistance of the wire.
[0074] To increase the length of the connection wire, the extension 312c is formed with
a section configured by rotating the letter S by 90 degrees.
[0075] In detail, the extension 312c includes a plurality of first bridges (312c-1, 312c-3,
and 312c-5) and a plurality of second bridges (312c-2 and 312c-4). The first bridges
(312c-1, 312c-3, and 312c-5) are disposed parallel to the first connector 312a, and
the second bridges (312c-2 and 312c-4) are disposed to be vertical to the first bridges
(312c-1, 312c- 3, and 312c- 5). The length (e.g., L1) of the first bridges (312c-1,
312c-3, and 312c-5) is formed to be greater than the length (e.g., M1) of the second
bridges (312c-2 and 312c-4). The plurality of second bridges may form a predetermined
angle with the first bridges, in which the predetermined angle is 90 degrees or not
90 degrees. For example, one first bridge may form an angle smaller than 90 degrees
with one second bridge, then this second bridge may form an angle larger than 90 degrees
with the next first bridge.
[0076] The first bridges (312c-1, 312c-3, and 312c-5) and the second bridges (312c-2 and
312c-4) are alternately connected. When the first bridges (312c-1, 312c-3, and 312c-5)
and the second bridges (312c-2 and 312c-4) are alternately connected, as shown in
FIG. 5, the extension 312c may be disposed in a shape formed by rotating the letter
S by 90 degrees. That is, the first bridge (312c-1), the second bridge (312c- 2),
the first bridge (312c- 3), the second bridge (312c- 4), and the first bridge (312c-
5) are sequentially arranged so they may be disposed according to the above-noted
shape.
[0077] The first bridge (312c-1) is connected to the first connector 312a and is disposed
along the same direction as the first connector 312a. As such, the second connection
wire 312 has a section extending to the display panel 100 from the pad (P) and going
backward in the extension 312c. Here, the backward section represents a section extended
to the display panel 100 from the pad (P) in the second direction on the second connection
wire 312, in which the connection wire 312 is extended to the display panel 100 in
a forward direction, bent and extended toward the pad (P) in a backward direction
in the backward section, and the bent and extended to the display panel 100. The connection
wire 312 is bent at least twice, and the wire is bent toward backward direction at
least once.
[0078] The extension 311c of the first connection wire 311 and the extension 312c of the
second connection wire 312 may be formed to be rotated by 180 degrees and to be symmetrical
with each other. When the extension 311 c of the first connection wire 311 is rotated
by 180 degrees with respect to a virtual line (11) passing through the centers of
the extension 311 c and 312c in the first direction, it may become the same shape
as the extension 312c of the second connection wire 312.
[0079] The neighboring first and second connection wires 311 and 312 from among a plurality
of connection wires 300 are separated and disposed with a predetermined gap D1 to
form the above-noted shape. That is, as shown in FIG. 4 and FIG. 6, the two first
and second connection wires 311 and 312 are extended and formed with a constant gap
D1 therebetween.
[0080] For example, the first bridges (311c-1, 311c-3, and 311c-5) of the neighboring first
connection wire 311 are disposed separately from the second bridges (312c-1, 312c-
3, and 312c- 5) of the second connection wire 312 with a constant gap D1. The second
bridges (311c-2 and 311c-4) of the neighboring first connection wire 311 are disposed
separately from the second bridges (312c-2 and 312c-4) of the second connection wire
312 with the constant gap D1.
[0081] According to the first embodiment of the inventive concept, it is easy to increase
the length of the wire within a predetermined width since the first and second connection
wires 311 and 312 include the section going backward in the second direction. As shown
in FIG. 4 and FIG. 5, the first and second connection wires 311 and 312 include the
section going backward in the second direction so resistance of the connection wire
may be increased without deteriorating integrity of the connection wire.
[0082] Referring to FIG. 6, the first and second connection wires 311 and 312 are formed
on different layers. The first connection wire 311 and the second connection wire
312 are sequentially stacked on the substrate (SUB). An insulating layer IL2 may be
provided between the first and second connection wires 311 and 312.
[0083] The first connection wire 311 may be formed on the same layer as the first gate wire
GW1 of the display panel 100. The second connection wire 312 may be formed on the
same layer as the second gate wire GW2 of the display panel 100.
[0084] When the first and second connection wires 311 and 312 are formed on a single layer
and the gap D1 between the first and second connection wires 311 and 312 is reduced,
the possibility of short-circuiting the first and second connection wires 311 and
312 is increased. An etching process has a limit in reducing the gap D1 between the
first and second connection wires 311 and 312. However, according to the first exemplary
embodiment of the inventive concept, the gap D1 between the first and second connection
wires 311 and 312 may be minimized by forming the first and second connection wires
311 and 312 on different layers. That is, when the gap D1 between the first and second
connection wires 311 and 312 is reduced, the possibility of short-circuiting the first
and second connection wires 311 and 312 is reduced.
[0085] FIG. 13 shows a comparison of connection wires configured with a single layer and
double layers.
[0086] Referring to FIG. 13 (A), when the first and second connection wires 311 and 312
are formed with the constant gap D1, an insulating layer is provided between the first
and second connection wires 311 and 312, thus the possibility of short circuiting
the first and second connection wires 311 and 312 by a foreign particle (E) is low.
However, as shown in FIG. 13 (B), when the first and second connection wires 311 and
312 are formed on the same layer with the same gap D1 shown in FIG. 13 (A), the possibility
of short circuiting the first and second connection wires 311 and 312 by a foreign
particle (E) is increased.
[0087] As described, the first and second connection wires 311 and 312 are formed on different
layers to prevent the first and second connection wires 311 and 312 from being short-circuited
by a foreign particle.
[0088] The gap D1 between the first and second connection wires 311 and 312 may be minimized
so that the integrity of the connection wire may be increased. The width S1 of the
first connection wire 311 may correspond to the width S2 of the second connection
wire 312.
[0089] As described in the first embodiment of the inventive concept, the first and second
connection wires 311 and 312 are formed as double layers, and they may be configured
to be triple or quadruple layers.
[0090] Referring to FIG. 1, the pad (P) is configured with a plurality of connecting pad
terminals P1 and P3 and a plurality of dummy pad terminals P2.
[0091] As described above, a plurality of connecting pad terminals P1 and P3 may be connected
to a plurality of connection wires 300. That is, some of the connection wires are
connected to the connecting pad terminal P1 and the rest of the connection wires are
connected to the connecting pad terminal P3.
[0092] A dummy pad terminal P2 may be provided between the connecting pad terminals P1 and
P3. The connection wire is not connected to the dummy pad terminal P2.
[0093] Regarding the display device according to the first embodiment of the inventive concept,
the flexible film 400 is connected to the pad (P) in the peripheral area (PA). A first
driving chip 200 for driving the display panel 100 may be mounted on the flexible
film 400. The flexible film 400 may be a chip on film (COF).
[0094] The flexible film 400 may be generated by forming a plurality of metal wires on a
flexible base film.
[0095] The first driving chip 200 may be installed on the base film and may generate a driving
signal. For example, the first driving chip 200 may be a scan driving circuit for
receiving a control signal and generating a scan signal or a data driving circuit
for generating a data signal. That is, the gate driver 210 or the data driver 230
may be formed in the first driving chip 200.
[0096] In the first embodiment of the inventive concept, the COF type flexible film 400
is disposed on the pad (P), moreover, as shown in FIG. 9, a chip on glass type second
driving chip 500 may be disposed in the peripheral area (PA) of the substrate (SUB).
A first side of the second driving chip 500 is connected to the pad (P). A second
side of the second driving chip 500 may be connected to another pad (N) by an additional
wire formed in the peripheral area (PA).
[0097] In a like manner as the first driving chip 200, the second driving chip 500 may be
a scan driving circuit for receiving a control signal and generating a scan signal
or a data driving circuit for generating a data signal. That is, the gate driver 210
or the data driver 230 may be formed in the second driving chip 500.
[0098] In a variation of the connection wire according to the first embodiment of the inventive
concept, the first and second connection wires 331 and 332 are disposed such that
their neighboring edges may overlap each other.
[0099] Referring to FIG. 7 and FIG. 8, no gap is provided between the first and second connection
wires 331 and 332, and the edges facing each other overlap the same. That is, the
first and second connection wires 311 and 312 are separately disposed with the constant
gap D1 in FIG. 4 to FIG. 6, and they may be disposed such that the gap D1 may be close
to 0 in the variation shown in FIG. 7 and FIG. 8.
[0100] According to the present variation, the integrity of a plurality of connection wires
300 disposed in the peripheral area (PA) of the substrate (SUB) may be further improved.
That is, the connection wires 300 may be more densely disposed by removing the gap
among the connection wires 300.
[0101] A display device including connection wires according to a second embodiment of the
inventive concept will now be described with reference to FIG. 10 to FIG. 12. The
same detailed descriptions as the first embodiment of the inventive concept will be
omitted in the second embodiment of the inventive concept.
[0102] FIG. 10 shows an enlarged view of a connection wire according to the second embodiment
of the inventive concept, FIG. 11 shows first and second connection wires of FIG.
10, and FIG. 12 shows a cross-sectional view with respect to line XII-XII of FIG.
10.
[0103] Referring to FIG. 10 and FIG. 11, in a like manner as the first embodiment of the
inventive concept, the neighboring first and second connection wires 351 and 352 from
among a plurality of connection wires 300 include a section extended to the display
panel 100 from the pad (P) in the second direction, in which the connection wires
351 and 352 are extended to the display panel 100 in a forward direction, bent and
extended toward the pad (P) in a backward direction, and then bent and extended to
the display panel 100 so as to increase the resistance of the connection wires. The
connection wires 351 and 352 are bent at least twice, and these wires are bent toward
backward direction at least once. For example, the connection wires may include a
section formed by rotating the letter S by 90 degrees.
[0104] The extension 351c of the first connection wire 351 and the extension 352c of the
second connection wire 352 may be formed to be rotated by 180 degrees and to be symmetrical
with each other. When the extension 351 c of the first connection wire 351 is rotated
by 180 degrees with respect to a virtual line (l2) passing between the extension 351
c of the first connection wire 351 and the extension 352c of the second connection
wire 352 in the first direction, it may become the same shape as the extension 352c
of the second connection wire 352.
[0105] Referring to FIG. 11, the first connection wire 351 includes a first connector 351
a, a second connector 351b, and an extension 351 c.
[0106] The first connector 351 a is connected to the pad (P). The first connector 351 a
is extended and formed in the second direction. That is, the first connector 351 a
is formed to extend to the display panel 100 from the pad (P). The first connector
351 a may be formed in a linear manner in the second direction.
[0107] The second connector 351 b is connected to the display panel 100 and is connected
to the first connector 351 a through the extension 351 c. The second connector 351
b is formed to be bent and then connected to a signal line of the display panel 100.
[0108] The extension 351 c is connected between the first and second connectors 351 a and
351 b to increase resistance of the first connection wire 351. The extension 351 c
increases the length of the connection wire to increase resistance of the wire.
[0109] The extension 351 c may include a section formed by rotating the letter S by 90 degrees
so as to increase the length of the connection wire.
[0110] The extension 351 c includes a plurality of first bridges (351 c- 1, 351c-3, and
351 c- 5) and a plurality of second bridges (351c-2, 351c-4, and 351 c- 6). The first
bridges (351c-1, 351c-3, and 351c-5) are disposed parallel to the first connector
351a, and the second bridges (351c-2, 351c-4, and 351c-6) are disposed to be vertical
to the first bridges (351c-1, 351c-3, and 351c-5). The second bridges (351c-2 and
351c-4) may be formed to have the same length. The plurality of second bridges may
form a predetermined angle with the first bridges, in which the predetermined angle
is 90 degrees or not 90 degrees. For example, one first bridge may form an angle smaller
than 90 degrees with one second bridge, then this second bridge may form an angle
larger than 90 degrees with the next first bridge.
[0111] The first bridges (351c-1, 351c-3, and 351c-5) and the second bridges (351c-2, 351c-4,
and 351c-6) are alternately connected to each other. When the first bridges (351c-1,
351c-3, and 351c-5) and the second bridges (351c-2, 351c-4, and 351c-6) are alternately
connected, as shown in FIG. 11, the extension 351 c may be disposed in a like manner
as the letter S is rotated by 90 degrees. That is, the first bridge (351c-1), the
second bridge (351c-2), the first bridge (351c-3), the second bridge (351c-4), the
first bridge (351c-5), and the second bridge (351c-6) are sequentially disposed so
they may be disposed according to the above-noted shape.
[0112] Differing from the first embodiment of the inventive concept, the first bridge of
the neighboring second connection wire 352 is not provided among the first bridges
(351c-1, 351c-3, and 351c-5) of the first connection wire 351. That is, the extensions
of the first and second connection wires 311 and 312 overlap each other in the first
embodiment of the inventive concept, and the extensions of the first and second connection
wires 351 and 352 are disposed separately from each other in the second embodiment
of the inventive concept.
[0113] Referring to FIG. 12, in a like manner as the first embodiment of the inventive concept,
the first and second connection wires 351 and 352 are formed on different layers.
The first connection wire 351 and the second connection wire 352 are sequentially
stacked on the substrate (SUB). An insulating layer IL2 may be provided between the
first and second connection wires 351 and 352.
[0114] In the display device including connection wires according to an embodiment of the
inventive concept, the first and second connection wires 311 and 312 are formed on
different layers to prevent the first and second connection wires 311 and 312 from
being short-circuited by a foreign particle, and the gap between the neighboring first
and second connection wires 311 and 312 may be minimized to increase the integrity
of the connection wires.
[0115] While this invention has been described in connection with what are presently considered
to be practical embodiments thereof, it is to be understood that the invention is
not limited to the disclosed embodiments, but, on the contrary, is intended to cover
various modifications and equivalent arrangements included within the scope of the
appended claims.